| 1 | //  Classes to compute Multi-Dish or CRT-like radio interferometer response
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| 2 | //  R. Ansari - Avril-Mai 2010 
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| 3 | 
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| 4 | #ifndef MDISH_SEEN
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| 5 | #define MDISH_SEEN
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| 6 | 
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| 7 | #include "machdefs.h"      // SOPHYA .h  
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| 8 | #include "sopnamsp.h"      // SOPHYA .h  
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| 9 | #include <math.h>
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| 10 | #include <iostream>
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| 11 | #include <vector>
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| 12 | #include <string> 
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| 13 | 
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| 14 | #include "genericfunc.h"   // SOPHYA .h  
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| 15 | #include "array.h"         // SOPHYA .h  
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| 16 | #include "histats.h"       // SOPHYA .h 
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| 17 | 
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| 18 | #define DeuxPI 2.*M_PI 
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| 19 | 
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| 20 | // -- Four2DResponse : Reponse instrumentale ds le plan k_x,k_y (angles theta,phi)
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| 21 | // typ=1 : Reponse gaussienne parabole diametre D exp[ - 0.5  (lambda  k_g / D )^2 ]
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| 22 | // typ=2 : Reponse parabole diametre D  Triangle <= kmax= 2 pi D / lambda   
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| 23 | // typ=3 : Reponse rectangle Dx x Dy  Triangle (|kx|,|k_y|) <= (2 pi Dx / lambda, 2 pi Dx / lambda) 
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| 24 | class Four2DResponse  {
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| 25 | public:
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| 26 |   // On donne dx=D/lambda=Dx/lambda , dy=Dy/lambda 
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| 27 |   Four2DResponse(int typ, double dx, double dy);
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| 28 | 
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| 29 |   Four2DResponse(Four2DResponse const& a)
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| 30 |   { typ_ = a.typ_; dx_=a.dx_; dy_=a.dy_; }
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| 31 |   Four2DResponse& operator=(Four2DResponse const& a)
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| 32 |   { typ_ = a.typ_; dx_=a.dx_; dy_=a.dy_; return (*this); }
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| 33 | 
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| 34 |   // Return the 2D response for wave vector (kx,ky)
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| 35 |   virtual double Value(double kx, double ky); 
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| 36 |   inline  double operator()(double kx, double ky) 
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| 37 |   { return Value(kx, ky); } 
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| 38 |   virtual Histo2D GetResponse(int nx=256, int ny=256);  
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| 39 |   inline double D() { return dx_; } ; 
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| 40 |   inline double Dx() { return dx_; } ; 
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| 41 |   inline double Dy() { return dy_; } ; 
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| 42 | 
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| 43 |   int typ_;
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| 44 |   double dx_, dy_; 
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| 45 | };
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| 46 | 
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| 47 | // -- Four2DRespTable : Reponse tabulee instrumentale ds le plan k_x,k_y (angles theta,phi) 
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| 48 | class Four2DRespTable : public  Four2DResponse {
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| 49 | public:
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| 50 |   // On donne dx=D/lambda=Dx/lambda , dy=Dy/lambda 
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| 51 |   Four2DRespTable(Histo2D const & hrep, double d);
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| 52 |   // Return the 2D response for wave vector (kx,ky)
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| 53 |   virtual double Value(double kx, double ky); 
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| 54 |   Histo2D hrep_;
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| 55 | };
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| 56 | 
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| 57 | // Classe toute simple pour representer un element de reception de type dish
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| 58 | class Dish {
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| 59 | public:
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| 60 |   // Circular dish 
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| 61 |   Dish(int id, double x, double y, double diam)
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| 62 |     :  id_(id), X(x), Y(y), D(diam), Dx(0.), Dy(0.), fgcirc_(true)   {   } 
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| 63 |   // Receiver with rectangular type answer in kx,ky plane 
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| 64 |   Dish(int id, double x, double y, double dx, double dy)
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| 65 |     :  id_(id), X(x), Y(y), D(0.), Dx(dx), Dy(dy), fgcirc_(false)   {   } 
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| 66 |   Dish(Dish const& a) 
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| 67 |     :  id_(a.id_), X(a.X), Y(a.Y), D(a.D), Dx(a.Dx), Dy(a.Dy), fgcirc_(a.fgcirc_)     {   } 
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| 68 |   inline bool isCircular() { return fgcirc_; }
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| 69 |   inline int ReflectorId() { return id_; }
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| 70 | 
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| 71 |   int id_;   // numero de reflecteur
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| 72 |   double D,X,Y;
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| 73 |   double Dx, Dy;
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| 74 |   bool fgcirc_;  // false -> rectangular dish 
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| 75 | };
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| 76 | 
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| 77 | // -----------------------------------
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| 78 | // -- Classe ressemblant a un histo 2D 
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| 79 | class QHis2D {
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| 80 | public:
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| 81 |   QHis2D();
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| 82 |   QHis2D(r_8 xMin,r_8 xMax,int_4 nxBin,r_8 yMin,r_8 yMax,int_4 nyBin);
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| 83 |   void Define(r_8 xMin,r_8 xMax,int_4 nxBin,r_8 yMin,r_8 yMax,int_4 nyBin);
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| 84 |   double Add(r_8 x, r_8 y, r_8 w, bool fgfh);
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| 85 |   inline double WBinX() { return dxb; }
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| 86 |   inline double WBinY() { return dyb; }
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| 87 |   Histo2D Convert();
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| 88 |   
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| 89 |   r_8 xmin,xmax,ymin,ymax;
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| 90 |   r_8 dxb,dyb;
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| 91 |   sa_size_t nx,ny;
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| 92 |   TArray<r_8> aw;
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| 93 |   double sumw0;
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| 94 | };
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| 95 | 
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| 96 | // -------------------------------------------------------------------
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| 97 | // -- Pour calculer la reponse ds le plan kx,ky d'un system MultiDish 
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| 98 | class MultiDish {
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| 99 | public:
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| 100 |   MultiDish(double lambda, double dmax, vector<Dish>& dishes, bool fgnoauto=false);
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| 101 | 
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| 102 |   inline void SetThetaPhiRange(double thetamax=0., int ntet=1, double phimax=0., int nphi=1)
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| 103 |   { thetamax_=thetamax; ntet_=ntet; phimax_=phimax; nphi_=nphi; }
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| 104 | 
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| 105 |   inline void SetRespHisNBins(int nx=128, int ny=128)
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| 106 |   { nx_=nx; ny_=ny; }
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| 107 |   Histo2D GetResponse();
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| 108 | 
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| 109 |   double CumulResp(Four2DResponse& rd, double theta=0., double phi=0.);
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| 110 |   inline size_t NbDishes() { return dishes_.size(); }
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| 111 | 
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| 112 |   double AddToHisto(double kx0, double ky0, double x, double y, double w, bool fgfh);
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| 113 | 
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| 114 |   double lambda_, dmax_;
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| 115 |   vector<Dish> dishes_;
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| 116 |   bool fgnoauto_;
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| 117 |   double thetamax_, phimax_; 
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| 118 |   int ntet_,nphi_; 
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| 119 |   int nx_, ny_;
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| 120 |   //   Histo2D h2w_, h2cnt_;
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| 121 |   QHis2D h2w_;
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| 122 |   int mcnt_;
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| 123 | };
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| 124 | 
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| 125 | 
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| 126 | #endif 
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